A Rotary DNA Mazzocchio Nanostructure

Abstract DNA nanotechnology offers architectures ranging from compact motifs to scaffolded origami, with trade-offs in structural complexity, addressability, and component economy. Here, we translate Leonardo da Vinci’s mazzocchio geometry into a programmable DNA assembly. Twenty distinct DNA strands hierarchically assemble into a toroid comprising 32 repeating octagonal subunits. Coarse-grained molecular dynamics simulations, transmission electron microscopy, and atomic force microscopy support formation of the designed architecture while revealing flexibility at intersubunit connections. The toroid was coupled to a triangular DNA origami platform through 12 DNA walkers distributed among three vertices. Sequential toehold-mediated strand displacement altered the attachment topology between the two structures, generating three docking configurations. Gel electrophoresis and ensemble fluorescence measurements produced the expected state-dependent responses, consistent with programmed repositioning. This work expands the design space of dynamic DNA nanotechnology through coupling of a material-efficient toroidal architecture with the spatial addressability of origami, establishing a versatile platform for reconfigurable nanoscale devices.

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Publication Details

Journal
Nano Letters
Published
2026-10-08
DOI
https://doi.org/10.1021/acs.nanolett.6c03371
Primary Topic
Advanced biosensing and bioanalysis techniques
Type
article
Field-Weighted Citation Impact
0.00
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article

A Rotary DNA Mazzocchio Nanostructure

Hannah Talbot, Julian A. Tanner, Xiaoyong Mo, Arun Richard Chandrasekaran et al.
Nano Letters
Advanced biosensing and bioanalysis techniques
article

A Rotary DNA Mazzocchio Nanostructure

Hannah Talbot, Julian A. Tanner, Xiaoyong Mo, Arun Richard Chandrasekaran, Marcello DeLuca, Simon Chi‐Chin Shiu, Edmund C. M. Tse, Gaurav Arya, Jonathan Piland, Xueyan Wang
article en

Abstract

Abstract DNA nanotechnology offers architectures ranging from compact motifs to scaffolded origami, with trade-offs in structural complexity, addressability, and component economy. Here, we translate Leonardo da Vinci’s mazzocchio geometry into a programmable DNA assembly. Twenty distinct DNA strands hierarchically assemble into a toroid comprising 32 repeating octagonal subunits. Coarse-grained molecular dynamics simulations, transmission electron microscopy, and atomic force microscopy support formation of the designed architecture while revealing flexibility at intersubunit connections. The toroid was coupled to a triangular DNA origami platform through 12 DNA walkers distributed among three vertices. Sequential toehold-mediated strand displacement altered the attachment topology between the two structures, generating three docking configurations. Gel electrophoresis and ensemble fluorescence measurements produced the expected state-dependent responses, consistent with programmed repositioning. This work expands the design space of dynamic DNA nanotechnology through coupling of a material-efficient toroidal architecture with the spatial addressability of origami, establishing a versatile platform for reconfigurable nanoscale devices.

Nano Letters
State University of New York (US), Duke University (US), University at Albany, State University of New York (US), University of Hong Kong (HK)
Openalex Percentile: Top 23%
Advanced biosensing and bioanalysis techniques
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